PaperPanorama

Nuclear Theory·nucl-th

Monday·August 24, 2020

2 papers1 primary·1 cross-listed

  1. 01

    Microscopic description of quadrupole-octupole coupling in actinides with the Gogny-D1M energy density functional

    R.R. Rodriguez-Guzman · Y.M. Humadi · L.M. Robledo

    The interplay between quadrupole and octupole degrees of freedom is discussed in a series of U, Pu, Cm and Cf isotopes both at the mean-field level and beyond. In addition to the static Hartree-Fock-Bogoliubov approach, dynamical beyond-mean-field correlations are taken into account via both parity restoration and symmetry-conserving Generator Coordinate Method calculations based on the parametrization D1M of the Gogny energy density functional. Physical properties such as correlation energies, negative-parity excitation energies as well as reduced transition probabilities and are discussed in detail and compared with the available experimental data. It is shown that, for the studied nuclei, the quadrupole-octupole coupling is weak and to a large extent the properties of negative parity states can be reasonably well described in terms of the octupole degree of freedom alone.

    nucl-thJ.Phys.G(2020)·25 citations
  2. 02

    Calculating the energy loss of leading jets

    Duff Neill🇺🇸 · Felix Ringer🇺🇸 · Nobuo Sato🇺🇸

    The energy loss mechanism of jets plays a central role in nuclear and high energy physics. We propose direct measurements of the energy loss of leading jets and perform a calculation at next-to-leading logarithmic (NLL) accuracy in the vacuum. The formation of leading jets can be described by jet functions which constitute probability densities and thus allow for a perturbative calculation of the average the energy loss. We identify the following three criteria for a direct measurement of jet energy loss at the cross section level. We measure a well defined object, the leading jet, where the formation process can be expressed in terms of a probability density. In addition, we need a measurement of a hard reference scale with respect to which jet energy loss is defined. At leading logarithmic accuracy, we require that the jet energy loss can be identified with parton energy loss. We discuss suitable observables and present numerical results including threshold corrections by making use of a parton shower Monte Carlo approach.

    hep-phhep-exnucl-exnucl-thPoS(2021)·1 citation

Affiliations

first authorsco-authorsvia INSPIRE